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Optimal decoupling capacitor sizing and placement for standard-cell layout designs

机译:用于标准单元布局设计的最佳去耦电容器尺寸和位置

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With technology scaling, the trend for high-performance integrated circuits is toward ever higher operating frequency, lower power supply voltages, and higher power dissipation. This causes a dramatic increase in the currents being delivered through the on-chip power grid and is recognized in the 2001 International Technology Roadmap for Semiconductors as one of the difficult challenges. The addition of decoupling capacitances (decaps) is arguably the most powerful degree of freedom that a designer has for power-grid noise abatement and is becoming more important as technology scales. In this paper, we propose and demonstrate an algorithm for the automated placement and sizing of decaps in application specific integrated circuit (ASIC)-like circuits. The problem is formulated as one of nonlinear optimization and is solved using a sensitivity-based quadratic programming (QP) solver. The adjoint sensitivity method is applied to calculate the first-order sensitivities. We propose a fast convolution technique based on piecewise linear (PWL) compressions of the original and adjoint waveforms. Experimental results show that power grid noise can be significantly reduced after a judicious optimization of decap placement, with little change in the total chip area.
机译:随着技术的发展,高性能集成电路的趋势是朝着更高的工作频率,更低的电源电压和更高的功耗发展。这导致通过片上电网传输的电流急剧增加,在2001年《国际半导体技术路线图》中被认为是艰巨的挑战之一。去耦电容(去电容)的增加可以说是设计人员降低电网噪声时最强大的自由度,并且随着技术的发展而变得越来越重要。在本文中,我们提出并演示了一种用于在类似专用集成电路(ASIC)的电路中自动放置decap并确定其大小的算法。该问题被公式化为非线性优化之一,并使用基于灵敏度的二次规划(QP)求解器进行了求解。伴随灵敏度法用于计算一阶灵敏度。我们提出了一种基于原始波形和伴随波形的分段线性(PWL)压缩的快速卷积技术。实验结果表明,经过明智地优化开盖位置后,可以显着降低电网噪声,而总芯片面积几乎不变。

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